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J O Lay

Publications and source records attributed to J O Lay.

At least 37 records · Page 2Linked to original sources

Analysis of 4-aminobiphenyl-DNA adducts in human urinary bladder and lung by alkaline hydrolysis and negative ion gas chromatography-mass spectrometry.

Analysis of carcinogen-DNA adducts has been regarded as a useful means of assessing human exposure to chemical carcinogens. We have established a method for quantitation of 4-aminobiphenyl (4-ABP)-DNA adducts by alkaline hydrolysis and gas chromatography with negative ion chemical ionization mass spectrometry (GC-NICI-MS). Aliquots of DNA (typically 100 micrograms/ml) were spiked with an internal standard, d9-4-ABP, and were hydrolyzed in 0.05 N NaOH at 130 degrees C overnight. The liberated 4-ABP was extracted with hexane and derivatized using pentafluoropropionic anhydride in trimethylamine for 30 min at room temperature prior to GC-NICI-MS. With in vitro [3H]N-hydroxy-4-ABP modified DNA standards, we observed 59 +/- 7% (n = 9) recovery of the 4-ABP and a linear correlation between hydrolyzed 4-ABP and the adduct levels ranging from about 1 in 10(8) to 1 in 10(4) nucleotides (r = 0.999, n = 9). The method was further validated by comparison of the results with that obtained by the 32P-postlabeling method. There was excellent agreement (r = 0.994, p < 0.001) between the two methods for quantitation of the adduct in eight samples of Salmonella typhimurium DNA treated with 4-ABP and rat liver S9, although the 32P-postlabeling method gave slightly higher values. The DNA adducts in 11 human lung and 8 urinary bladder mucosa specimens were then determined by our GC-NICI-MS method. The adduct levels were found to be < 0.32 to 49.5 adducts per 10(8) nucleotides in the lungs and < 0.32 to 3.94 adducts per 10(8) nucleotides in the bladder samples.(ABSTRACT TRUNCATED AT 250 WORDS)

Alkalies↗

DNA adducts and carcinogenicity of nitro-polycyclic aromatic hydrocarbons.

We have been interested in the structure-activity relationships of nitro-polycyclic aromatic hydrocarbons (nitro-PAHs), and have focused on the correlation of structural and electronic features with biological activities, including mutagenicity and tumorigenicity. In our studies, we have emphasized 1-, 2-, 3-, and 6-nitrobenzo[a]pyrenes (nitro-B[a]Ps) and related compounds, all of which are derived from the potent carcinogen benzo[a]pyrene. While 1-, 2-, and 3-nitro-B[a]P are potent mutagens in Salmonella, 6-nitro-B[a]P is a weak mutagen. In vitro metabolism of 1- and 3-nitro-B[a]P has been found to generate multiple pathways for mutagenic activation. The formation of the corresponding trans-7,8-dihydrodiols and 7,8,9,10-tetrahydrotetrols suggests that 1- and 3-nitro-B[a]P trans-7,8-diol-9,10-epoxides are ultimate metabolites of the parent nitro-B[a]Ps. We have isolated a DNA adduct from the reaction between 3-nitro-B[a]P trans-7,8-diol-anti9,10-epoxide and calf thymus DNA, and identified it as 10-(deoxyguanosin-N2-yl)-7,8,9-trihydroxy-7,8,9,10-tetrahydro-3-ni tro-B[a]P . The same adduct was identified from in vitro metabolism of [3H]3-nitro-B[a]P by rat liver microsomes in the presence of calf thymus DNA. A DNA adduct of 3-nitro-B[a]P formed from reaction of N-hydroxy-3-amino-B[a]P, prepared in situ with calf thymus DNA was also isolated. This adduct was identified as 6-(deoxyguanosin-N2-yl)-3-amino-B[a]P. The same adduct was obtained from incubating DNA with 3-nitro-B[a]P in the presence of the mammalian nitroeductase, xanthine oxidase, and hypoxanthine.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Detection and characterization of DNA adducts at the femtomole level by desorption ionization mass spectrometry.

Current methodologies for the detection and isolation of carcinogen-DNA adducts have advanced beyond the capabilities of the methods used to elucidate their structures. This difficulty seriously limits the potential use of DNA-carcinogen adducts in human dosimetry. We have investigated two general strategies for the analysis of model arylamine-nucleoside adducts using desorption ionization mass spectrometry (MS). Using fast atom bombardment MS-MS with constant neutral loss scans, we can identify the protonated molecule of derivatized adducts in samples as small as 1 pmole, and then apply daughter ion MS-MS scans to obtain structure-specific fragmentation. Using this strategy we have differentiated adducts having the same carcinogen and different bases [e.g., N-(deoxyadenosin-8-yl)-4-aminobiphenyl and N-(deoxyguanosin-8-yl)-4- aminobiphenyl] or the same base and different carcinogens [e.g., N-(deoxyguanosin-8-yl)-4- aminobiphenyl and N-(deoxyguanosin-8-yl)-2-aminofluorene]. In the second approach we used laser desorption time-of-flight MS to obtain spectra from adduct samples as small as 20 fmole. These data indicate that MS can be used for the analysis of very low (picomole-femtomole) levels of nucleoside adducts, including isomers, and that desorption ionization MS and MS-MS have significant potential for applications in human dosimetry.

Carcinogens↗

Thermospray high-performance liquid chromatography/mass spectrometric determination of cyclosporins.

The cyclic undecapeptides cyclosporin (Csp) A, CspD and dihydro CspC (HCspC) were analyzed by high-performance liquid chromatography/thermospray-mass spectrometry (HPLC/TSP-MS) on line with a UV detector. Positive ion partial (1000-1300 u) mass spectra of these compounds could be obtained with 1-2 pmol injected on column. Mass spectra were characterized by signals corresponding to the [M+H] ions as well as fragment ions derived from the loss of 112 (CspA and CspD) or 44, 114 and 114 + 44 (HCspC) mass units from the parent ion. The same qualitative profile was observed for negative-ion acquisition where the ions were formed by proton abstraction. The application of the technique to the characterization of CspA and its major hydroxylated and dealkylated metabolites in human blood samples is presented.

Chromatography, High Pressure Liquid↗

Metabolism of methapyrilene by Fischer-344 rat and B6C3F1 mouse hepatocytes.

1. Suspension cultures of freshly isolated F344 rat and B6C3F1 mouse hepatocytes were compared for their ability to transform various concentrations of methapyrilene (MP). 2. MP metabolites were isolated and purified by h.p.l.c., and were identified by comparing their chromatographic and mass spectral properties with those of authentic standards. 3. Both rat and mouse hepatocytes transformed MP to tentatively identified 2-thiophenecarboxylic acid (I), and definitively identified mono-N-desmethyl methapyrilene glucuronide (II), methapyrilene glucuronide (III), methapyrilene N-oxide (V), and mono-N-desmethyl methapyrilene (VII).

Animals↗

Characterization of the mycotoxin fumonisin B1: comparison of thermospray, fast-atom bombardment and electrospray mass spectrometry.

The utility of thermospray mass spectrometry (TSMS), fast-atom bombardment mass spectrometry (FABMS), and electrospray mass spectrometry (ESMS) for the analysis of Fumonisin B1 is investigated. In addition, the analysis of two different standards of Fumonisin B1 as well as an inoculated corn culture extract that contained Fumonisin B1 is reported. The results of these efforts show that ESMS, as well as FABMS and a combination of FAB and tandem mass spectrometry (FABMS/MS), provide useful data for the characterization of Fumonisin B1. The detection limit was 50 pg for Fumonisin B1 when analyzed by full scan FABMS, and 5 pg when analyzed by single-reaction monitoring FABMS/MS.

Electrochemistry↗

Formation of C8-modified deoxyguanosine and C8-modified deoxyadenosine as major DNA adducts from 2-nitropyrene metabolism mediated by rat and mouse liver microsomes and cytosols.

2-Nitropyrene, the geometric isomer of the most studied nitropolycyclic aromatic hydrocarbon (nitro-PAH), 1-nitropyrene, is an environmental contaminant detected in ambient air and a potent direct-acting mutagen. Its metabolic activation leading to the formation of DNA adducts was studied. The activated metabolite, N-hydroxy-2-aminopyrene, was prepared and reacted with calf thymus DNA. Upon enzymatic hydrolysis of the DNA, the resulting nucleosides were separated by HPLC, and the adducts were characterized by mass and proton NMR spectral analysis. Both N-(deoxyguanosin-8-yl)-2-aminopyrene and N-(deoxyadenosin-8-yl)-2-aminopyrene, in a 5:2 ratio, were identified. These adducts were then utilized as standards to identify the DNA adducts formed from reaction of [3H]2-nitropyrene with DNA mediated by liver microsomes and cytosols of mouse and rat. In all cases, both adducts were formed. The quantities of the two adducts formed in each system were: mouse liver microsomes (11.3 pmol [3H]2-nitropyrene/mg DNA), rat liver microsomes (23), mouse liver cytosol (11.4) and rat liver cytosol (5.1). Thus, these adducts were formed in highest yield from rat liver microsomes and the lowest from rat liver cytosol. The deoxyguanosine/deoxyadenosine adduct ratio was higher from rat and mouse liver microsomes (7.8:9.2) than from rat and mouse liver cytosols (2.5:3.1). Our results represent the first direct demonstration of a C8-deoxyadenosine adduct being formed as a major product from the reaction of a nitro-PAH metabolite with DNA.

Animals↗

Covalent binding of 4,4'-methylenebis-(2-chloroaniline) to rat liver DNA in vivo and of its N-hydroxylated derivative to DNA in vitro.

The binding of [ring-3H]4,4'-methylenebis(2-chloroaniline) (MOCA) to rat liver DNA following i.p. injection is demonstrated. Three discrete adducts were eluted on HPLC following enzymic hydrolysis to the nucleoside level. Three adducts, with the same retention times on HPLC, were present after i.p. injection of the N-acetyl derivative of MOCA tritiated in the benzene rings. Only two of these adducts were found when the N-acetyl derivative, tritiated on the acetyl group, was used. Thus, at least one of the adducts formed by MOCA is not acetylated. The N-hydroxy derivative of MOCA was synthesised and reacted with DNA in vitro. Following enzymic hydrolysis of this DNA, the major product was shown to co-elute with the radiolabelled non-acetylated adduct produced in the liver DNA of animals injected with [ring-3H]MOCA. This same compound was also isolated following the reaction of N-hydroxy-4-amino-3-chlorobenzyl alcohol with DNA, and subsequent enzymic hydrolysis. The NMR and mass spectra of the synthetic adduct were consistent with N-(deoxyadenosin-8-yl)-4-amino-3-chlorobenzyl alcohol. Thus, the major adduct formed in vivo has involved cleavage of the bond between the methylene bridge and one of the aromatic nuclei of MOCA.

Acetylation↗

Characterization of seven antihistamines, their N-oxides and related metabolites by fast atom bombardment mass spectrometry and fast atom bombardment tandem mass spectrometry.

We have examined the synthetic N-oxides of five ethylenediamine-type antihistamines using fast atom bombardment (FAB) mass spectrometry and FAB tandem mass spectrometry (MS/MS). Fragmentation of the protonated molecule in the normal and collisionally activated spectra appeared to be characteristic for this class of antihistamine N-oxide. Spectra were also acquired from an ethanolamine and a propylamine antihistamine N-oxide for comparison. These results were very similar to those obtained from biologically produced antihistamine N-oxides, as well as isomeric metabolites, which were readily distinguished from the N-oxides by characteristic fragmentation. In addition, a prominent ion 16 daltons lower in mass, which has been attributed to loss of elemental oxygen from the protonated N-oxide in chemical ionization mass spectral studies, was shown to be a matrix-dependent product of the solution-phase reduction of the antihistamine N-oxide to the parent antihistamine during FAB ionization. These results demonstrate that with a non-reducing matrix such as glycerol, FAB mass spectrometry and FAB MS/MS are excellent methods for the characterization of the non-conjugated antihistamine metabolites such as the N-oxides.

Ethanolamines↗

Fast-atom bombardment and thermospray mass spectrometry for the characterization of two glucuronide metabolites of methapyrilene.

Two conjugated metabolites of methapyrilene hydrochloride isolated from mouse-hepatocytes were examined by mass spectrometry using fast-atom bombardment (FAB) and thermospray ionization. The major metabolite, methapyrilene glucuronide, was identified based on a prominent peak due to the protonated molecule as well as the loss of the dimethylamine and sugar moieties. Identification of the second metabolite was complicated by large signals associated with the biological sample matrix. The complementary nature of the fragmentation observed in the mass spectra using FAB and thermospray ionization allowed this metabolite to be identified as the desmethylmethapyrilene glucuronide. The fragmentation observed using FAB ionization was not greatly affected by the presence of the glucuronide moiety. While loss of the sugar moiety indicated a glucuronide, additional fragmentation confirmed the presence of the underlying ethylenediamine substructure which is characteristic of this class of antihistamines.

Animals↗

Identification of the glutathione conjugate of 4-nitroquinoline 1-oxide formed in the reaction catalyzed by murine glutathione transferases.

The product of the enzyme-catalyzed conjugation of glutathione and 4-nitroquinoline 1-oxide was isolated and its structure determined by MS and NMR. The results indicate that the cysteine sulfur of glutathione replaces the nitro group of 4-nitroquinoline 1-oxide in the reaction with the formation of 4-(glutathion-S-yl)-quinoline 1-oxide. No evidence was found for the binding of glutathione to any other position of 4-nitroquinoline 1-oxide or through any group other than the cysteine sulfur.

4-Nitroquinoline-1-oxide↗

A probe for the mutagenic activity of the carcinogen 4-aminobiphenyl: synthesis and characterization of an M13mp10 genome containing the major carcinogen-DNA adduct at a unique site.

The duplex genome of Escherichia coli virus M13mp10 was modified at a unique site to contain N-(deoxyguanosin-8-yl)-4-aminobiphenyl (dG8-ABP), the major carcinogen-DNA adduct of the human bladder carcinogen 4-aminobiphenyl. A tetradeoxynucleotide containing a single dG8-ABP residue was synthesized by reacting 5'-d(TpGpCpA)-3' with N-acetoxy-N-(trifluoracetyl)-4-aminobiphenyl, followed by high-performance liquid chromatography purification of the principal reaction product 5'-d(TpG8-ABPpCpA)-3' (yield 15-30%). Characterization by fast atom bombardment mass spectrometry confirmed the structure as an intact 4-aminobiphenyl-modified tetranucleotide, while 1H nuclear magnetic resonance spectroscopy established the site of substitution and the existence of ring stacking between the carcinogen residue and DNA bases. Both 5'-d(TpG8-ABPpCpA)-3' and 5'-d(TpGpCpA)-3' were 5'-phosphorylated by use of bacteriophage T4 polynucleotide kinase and were incorporated into a four-base gap uniquely positioned in the center of the recognition site for the restriction endonuclease PstI, in an otherwise duplex genome of M13mp10. In the case of the adducted tetranucleotide, dG8-ABP was located in the minus strand at genome position 6270. Experiments in which the tetranucleotides were 5' end labeled with [32P]phosphate revealed the following: the adducted oligomer, when incubated in a 1000-fold molar excess in the presence of T4 DNA ligase and ATP, was found to be incorporated into the gapped DNA molecules with an efficiency of approximately 30%, as compared to the unadducted d(pTpGpCpA), which was incorporated with 60% ligation efficiency; radioactivity from the 5' end of each tetranucleotide was physically mapped to a restriction fragment that contained the PstI site and represented 0.2% of the genome; the presence of the lesion within the PstI recognition site inhibited the ability of PstI to cleave the genome at this site; in genomes in which ligation occurred, T4 DNA ligase was capable of covalently joining both modified and unmodified tetranucleotides to the gapped structures on both the 5' and the 3' ends with at least 90% efficiency. Evidence also is presented showing that the dG8-ABP-modified tetranucleotide was stable to the conditions of the recombinant DNA techniques used to insert it into the viral genome.(ABSTRACT TRUNCATED AT 400 WORDS)

Aminobiphenyl Compounds↗

Fast atom bombardment mass spectrometry and fast atom bombardment mass spectrometry/mass spectrometry of three glutathione conjugates of acetaminophen.

Three glutathione conjugates of acetaminophen were characterized by fast atom bombardment/mass spectrometry (FAB/MS) and fast atom bombardment/mass spectrometry/mass spectrometry (FAB/MS/MS). The conjugates, 3-(glutathion-S-yl)acetaminophen, 3-(glutathion-S-yl)diacetaminophen and 3-(diglutathion-S-yl)diacetaminophen showed intense [MH]+ ions at m/z 457, 606 and 911, respectively. Only 3-(glutathion-S-yl)acetaminophen showed any fragmentation by FAB/MS. Structurally characteristic fragmentation was observed with all three conjugates when the [MH]+ ions were collisionally activated. The loss of the glycine (GLY) and glutamic acid (GLU) moieties indicated the presence of at least one glutathione (GSH) group. Multiple losses, some of which could only occur via cleavages in both GSH moieties, were observed with the diglutathione conjugate.

Acetaminophen↗

Direct analysis of rat bile for acetaminophen and two of its conjugated metabolites via thermospray liquid chromatography/mass spectrometry.

Bile from rats treated with acetaminophen was analyzed by direct injection onto a thermospray liquid chromatography/mass spectrometry (LC/MS) system. Two conjugated metabolites of acetaminophen were separated by the high-pressure liquid chromatographic system and analyzed by mass spectrometry. The conjugates were identified as the glutathione-acetaminophen conjugate and the glucuronide-acetaminophen conjugate by comparison of the chromatographic retention times and the mass spectra to that of the synthetic standards. No evidence of acetaminophen metabolites was observed when bile samples were subjected to direct analysis by fast atom bombardment mass spectrometry.

Acetaminophen↗

Identification of C8-modified deoxyinosine and N2- and C8-modified deoxyguanosine as major products of the in vitro reaction of N-hydroxy-6-aminochrysene with DNA and the formation of these adducts in isolated rat hepatocytes treated with 6-nitrochrysene and 6-aminochrysene.

Since 6-nitrochrysene and 6-aminochrysene have shown activity in carcinogenicity bioassays, we have begun an investigation of their metabolic activation pathways and the nature of the carcinogen-DNA adducts that may be formed. N-Hydroxy-6-aminochrysene (N-hydroxy-AC), a candidate proximate or ultimate carcinogen and the highest polycyclic N-hydroxy arylamine homolog studied thus far, was prepared by direct chemical synthesis and characterized by 1H-n.m.r. spectroscopy. Its rate and extent of reaction with DNA in vitro was 20-30 nmol bound/mg DNA/30 min, which is 2-10 times greater than has been reported for several other carcinogenic N-hydroxy arylamines. Three major aminochrysene-nucleoside adducts were detected in enzymatic hydrolysates of this N-hydroxy-AC-modified DNA, and these were isolated and identified by mass and 1H-n.m.r. spectroscopy as N-(deoxyinosin-8-yl)-6-aminochrysene, 5-(deoxyguanosin-N2-yl)-6-aminochrysene, and N-(deoxyguanosin-8-yl)-6-aminochrysene. These adducts accounted for 32%, 28%, and 22% respectively, of the total DNA adducts formed. We hypothesize that the deoxyinosine adduct is derived from spontaneous oxidation of the corresponding deoxyadenosine adduct prior to or during DNA isolation and adduct preparation. DNA isolated from Sprague-Dawley rat hepatocytes which had been treated with [3H]6-aminochrysene or [3H]6-nitrochrysene contained up to 12 pmol adducts/mg DNA (4 adducts per 10(6) nucleotides). High performance liquid chromatography (h.p.l.c.) analyses of enzymatic hydrolysates of this DNA indicated that the major products formed cochromatographed with the C8-deoxyinosine and C8-deoxyguanosine adducts. N-(Deoxyinosin-8-yl)-6-aminochrysene and N-(deoxyguanosin-8-yl)-6-aminochrysene accounted for 45% and 30% respectively, of the total DNA adducts formed in these cells. The preferential modification of deoxyadenosine by N-hydroxy-6-aminochrysene and the apparent facile oxidation of this adduct to a deoxyinosine derivative is thus far unique among the reactions of N-hydroxyarylamines with DNA and would not be predicted on the basis of reactivity alone.

Animals↗

High resolution mass spectrometric and high-field nuclear magnetic resonance spectroscopic studies of the herbicide propanil, its N-oxidative decomposition products and related compounds.

A number of compounds associated with dichloroaniline-based herbicides were examined by high resolution mass spectrometry and high-field nuclear magnetic resonance spectroscopy. These compounds included the herbicide propanil (N-propionyl-3,4-dichloroaniline) and the related compound N-acetyl-3,4-dichloroaniline. Several possible oxidative metabolic products, including N-hydroxy-3,4-dichloroaniline, nitroso-3,4-dichlorobenzene, N-hydroxy-N-propionyl-3,4-dichloroaniline and N-hydroxy-N-acetyl-3,4-dichloroaniline were also investigated. Mass spectral fragmentation schemes were proposed, based on exact mass measurements for fragment ions from these related compounds. The change in fragmentation behavior upon oxidation of the N-acyl compounds to N-hydroxy-N-acyl derivatives was found to be quite significant. The N-hydroxy-substituted compounds showed extensive fragmentation while the analogous non-hydroxylated compounds and nitroso-3,4-dichlorobenzene showed little fragmentation. Line broadening detected in several of the high-field nuclear magnetic resonance spectra was attributed to cis-trans isomerization. The highly toxic 3,3',4,4'-tetrachloroazobenzene and 3,3',4,4'-tetrachloroazoxybenzene were also examined by high resolution mass spectrometry.

Anilides↗

Desorption chemical ionization and fast atom bombardment mass spectrometric studies of the glucuronide metabolites of doxylamine.

Three glucuronide metabolites of doxylamine succinate were collected in a single fraction using high-performance liquid chromatography (HPLC) from the urine of dosed male Fischer 344 rats. The metabolites were then separated using an additional HPLC step into fractions containing predominantly a single glucuronide metabolite. Analysis of the metabolites by methane and ammonia desorption chemical ionization, with and without derivatization, revealed fragment ions suggestive of a hydroxylated doxylamine moiety. Identification of the metabolites as glucuronides of doxylamine, desmethyldoxylamine and didesmethyldoxylamine was accomplished, based on determination of the molecular weight and exact mass of each metabolite using fast atom bombardment (FAB) ionization. This assignment was confirmed by the fragmentation observed in FAB mass spectrometric and tandem mass spectrometric experiments. Para-substitution of the glucuronide on the phenyl moiety was observed by 500-MHz nuclear magnetic resonance (NMR) spectrometry. A fraction containing all three glucuronide metabolites, after a single stage of HPLC separation, was also analysed by FAB mass spectrometry, and the proton- and potassium-containing quasimolecular ions for all three metabolites were observed.

Animals↗